空间减重力环境下下肢机械肌肉康复与电化学监测生物医学软体机器人装置设计

Victor Ticllacuri, Jose Cornejo, Niels Castrejon, Aurora B. Diaz, K. Hinostroza, Devjoy Dev, Yen-kai Chen, P. Palacios, Walter Castillo, Mariela Vargas, Jorge A. Cornejo-Aguilar, J. Montalván, A. Roman-Gonzalez
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引用次数: 12

摘要

太空旅行是人类最奇妙的愿望之一。然而,由于极端的条件,太空是最危险的环境。重力减少会导致废用性肌肉萎缩和下肢血液循环受损。因此,本文提出了一种新的生物医学软体机器人系统,通过对宇航员下肢软组织施加能量有效的机械刺激来促进肌肉发育和促进血液循环,并通过基于棉花的碳纳米管生物传感器监测其性能。计算力学模拟表明,能量优化的最大增幅为89%,最大安全系数为2.75。这些初步结果表明,软体机器人装置的效率和安全性有所提高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Design of Biomedical Soft Robotic Device for Lower Limbs Mechanical Muscle Rehabilitation and Electrochemical Monitoring under Reduced-Gravity Space Environment
Space travel is one of humanity's most fantastic aspirations. However, space is the most dangerous environment due to extreme conditions. Reduced-gravity generates disuse muscle atrophy and impaired blood circulation in lower limbs. Therefore, this paper proposes a new biomedical soft robotic system to improve muscle development and promote blood circulation by applying energetically efficient mechanical stimulation to the soft tissues of the astronaut's lower limb and, additionally, to monitor their performance by cotton-based carbon nanotubes biosensors. The computational mechanical simulations performed show a maximum increase in energy optimisation of 89% and a maximum safety factor of 2.75. These preliminary results suggest an increase in the efficiency and safety of the soft robotic device.
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